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Updated: Jul 14, 2025

Monitoring Hippo Signaling Pathway Activity Using a Luciferase-based Large Tumor Suppressor LATS Biosensor
Published on: September 13, 2018
Comprehensive split TEV based protein-protein interaction screening reveals TAOK2 as a key modulator of Hippo
Xiao Ma1, Fiona J Mandausch1, Yuxin Wu1
1Research Group Cell Signalling, Department of Psychiatry and Psychotherapy, LMU University Hospital, LMU Munich, Nussbaumstr. 7, 80336 Munich, Germany.
Abstract:
The conserved Hippo signalling pathway plays a crucial role in tumour formation by limiting tissue growth and proliferation. At the core of this pathway are tumour suppressor kinases STK3/4 and LATS1/2, which limit the activity of the oncogene YAP1, the primary downstream effector. Here, we employed a split TEV-based protein-protein interaction screen to assess the physical interactions among 28 key Hippo pathway components and potential upstream modulators. This screen led us to the discovery of TAOK2 as pivotal modulator of Hippo signalling, as it binds to the pathway's core kinases, STK3/4 and LATS1/2, and leads to their phosphorylation. Specifically, our findings revealed that TAOK2 binds to and phosphorylates LATS1, resulting in the reduction of YAP1 phosphorylation and subsequent transcription of oncogenes. Consequently, this decrease led to a decrease in cell proliferation and migration. Interestingly, a correlation was observed between reduced TAOK2 expression and decreased patient survival time in certain types of human cancers, including lung and kidney cancer as well as glioma. Moreover, in cellular models corresponding to these cancer types the downregulation of TAOK2 by CRISPR inhibition led to reduced phosphorylation of LATS1 and increased proliferation rates, supporting TAOK2's role as tumour suppressor gene. By contrast, overexpression of TAOK2 in these cellular models lead to increased phospho-LATS1 but reduced cell proliferation. As TAOK2 is a druggable kinase, targeting TAOK2 could serve as an attractive pharmacological approach to modulate cell growth and potentially offer strategies for combating cancer.
Insights
The Hippo pathway regulates tissue growth, with TAOK2 kinase identified as a key modulator. TAOK2 binds core kinases, inhibiting YAP1 and reducing cancer cell proliferation, suggesting its potential as a therapeutic target.
Area of Science:
- Molecular Biology
- Cell Biology
- Oncology
Background:
- The Hippo signalling pathway is critical in controlling tissue growth and acts as a tumour suppressor mechanism.
- Core components include STK3/4 and LATS1/2 kinases, which inhibit the oncogene YAP1.
- Dysregulation of the Hippo pathway is implicated in tumourigenesis.
Purpose of the Study:
- To identify novel modulators of the Hippo signalling pathway.
- To investigate the role of TAOK2 in Hippo signalling and its impact on cancer.
Main Methods:
- Utilized a split TEV-based protein-protein interaction screen to map pathway interactions.
- Employed CRISPR inhibition and overexpression in cancer cell models.
- Assessed YAP1 phosphorylation, cell proliferation, and migration.
Main Results:
- Discovered TAOK2 as a novel modulator that binds and phosphorylates LATS1/2, core kinases of the Hippo pathway.
- TAOK2 binding to LATS1 reduces YAP1 phosphorylation, decreasing oncogene transcription, cell proliferation, and migration.
- Reduced TAOK2 expression correlates with decreased survival in lung, kidney, and glioma cancers.
Conclusions:
- TAOK2 functions as a tumour suppressor by modulating the Hippo pathway.
- TAOK2's role in inhibiting cancer cell proliferation and migration highlights its potential as a therapeutic target.
- Targeting the druggable kinase TAOK2 offers a promising strategy for cancer treatment.
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